Lighting system and control thereof
US-2024411164-A1 · Dec 12, 2024 · US
US12126273B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-12126273-B2 |
| Application number | US-202118040076-A |
| Country | US |
| Kind code | B2 |
| Filing date | Aug 30, 2021 |
| Priority date | Sep 15, 2020 |
| Publication date | Oct 22, 2024 |
| Grant date | Oct 22, 2024 |
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A method for driving an electro-optical functional layer by a control, the functional layer being applied on a substrate and being variable in its transmissive and/or reflective properties by applying an electric field, the control unit having a supply voltage input and a feed output, and a voltage measuring system and an energy store, includes measuring a voltage actually available at the supply voltage input, if the available voltage is greater than a reference value, driving the functional layer with an AC voltage via the feed output, the energy store being charged at least in sections, if the available voltage is less than or equal to a reference value, driving the functional layer with a DC voltage via the feed output. At least part of the energy for the driving is drawn from the energy store. The DC voltage is less than the peak value of the AC voltage.
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The invention claimed is: 1. A method for driving an electro-optical functional layer by a control unit, wherein the electro-optical functional layer is applied on a substrate, and wherein the electro-optical functional layer is variable in its transmissive and/or reflective properties by applying an electric field, wherein the control unit has a supply voltage input and a feed output as well as voltage measuring device and an energy store, the method comprising: measuring a voltage actually available at the supply voltage input, if the available voltage is greater than a reference value, driving the electro-optical functional layer with an AC voltage via the feed output, wherein the energy store is charged at least in sections, if the available voltage is less than or equal to a reference value, driving the electro-optical functional layer with a DC voltage via the feed output, wherein at least part of the energy for the driving is drawn from the energy store, wherein the DC voltage is less than the peak value of the AC voltage. 2. The method according to claim 1 , wherein the reference value is smaller by at least half than a specified voltage. 3. The method according to claim 1 , wherein a frequency of the AC voltage is greater than or equal to 25 Hz. 4. The method according to claim 1 , wherein a frequency of the AC voltage is less than or equal to 100 Hz. 5. The method according to claim 1 , wherein the measuring requires less than a half-period of the AC voltage. 6. The method according to claim 1 , wherein in a charged state, the energy store enables driving the electro-optical functional layer for a period of 0.25 seconds or more. 7. The method according to claim 1 , wherein in a charged state, the energy store enables driving the electro-optical functional layer for a period of 1 second or less. 8. An arrangement for carrying the method according to claim 1 , the arrangement comprising: a substrate, an electro-optical functional layer, a control unit, wherein the electro-optical functional layer is applied on the substrate, and wherein the electro-optical functional layer is variable in its transmissive and/or reflective properties by applying an electric field, wherein the control unit has a supply voltage input and a feed output as well as voltage measuring device and an energy store, wherein the voltage measuring device are set up for measuring a voltage actually available at the supply voltage input, wherein, if the available voltage is greater than a reference value, the control unit is set up for driving the electro-optical functional layer with an AC voltage via the feed output, wherein the energy store is charged at least in sections, wherein, if the available voltage is less than or equal to a reference value, the control unit is set up for driving the electro-optical functional layer with a DC voltage via the feed output, wherein at least part of the energy for the driving is drawn from the energy store, wherein the DC voltage is less than the peak value of the AC voltage. 9. The arrangement according to claim 8 , wherein the reference value is smaller by at least half than a specified voltage. 10. The arrangement according to claim 8 , wherein a frequency of the AC voltage is greater than or equal to 25 Hz. 11. The arrangement according to claim 8 , wherein a frequency of the AC voltage is less than or equal to 100 Hz. 12. The arrangement according to claim 8 , wherein the voltage measuring device require less than a half-period of the AC voltage for the measuring. 13. The arrangement according to claim 8 , wherein in a charged state, the energy store enables the driving of the electro-optical functional layer for a period of 0.25 seconds or more. 14. The arrangement according to claim 8 , wherein in a charged state, the energy store enables the driving of the electro-optical functional layer for a period of 1 second or less.
Arrangements incorporating converting means for enabling loads to be operated at will from different kinds of power supplies, e.g. from AC or DC · CPC title
characterised by the electro-optical or magneto-optical effect, e.g. field-induced phase transition, orientation effect, guest-host interaction or dynamic scattering · CPC title
Operation of devices; Circuit arrangements, not otherwise provided for in this subclass · CPC title
wherein the output is created by adding a regulated voltage to or subtracting it from an unregulated input · CPC title
based on polymer dispersed liquid crystals, e.g. microencapsulated liquid crystals · CPC title
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